EP2435579A1 - Biosensors utilizing ink jet-printed biomolecule compatible sol gel inks and uses thereof - Google Patents
Biosensors utilizing ink jet-printed biomolecule compatible sol gel inks and uses thereofInfo
- Publication number
- EP2435579A1 EP2435579A1 EP10779977A EP10779977A EP2435579A1 EP 2435579 A1 EP2435579 A1 EP 2435579A1 EP 10779977 A EP10779977 A EP 10779977A EP 10779977 A EP10779977 A EP 10779977A EP 2435579 A1 EP2435579 A1 EP 2435579A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- substrate
- biosensor
- sol gel
- biomolecule
- reaction zone
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
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Classifications
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/543—Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals
- G01N33/5436—Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals with ligand physically entrapped within the solid phase
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05D—PROCESSES FOR APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05D7/00—Processes, other than flocking, specially adapted for applying liquids or other fluent materials to particular surfaces or for applying particular liquids or other fluent materials
- B05D7/50—Multilayers
- B05D7/56—Three layers or more
- B05D7/58—No clear coat specified
- B05D7/584—No clear coat specified at least some layers being let to dry, at least partially, before applying the next layer
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q1/00—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
- C12Q1/001—Enzyme electrodes
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Q—MEASURING OR TESTING PROCESSES INVOLVING ENZYMES, NUCLEIC ACIDS OR MICROORGANISMS; COMPOSITIONS OR TEST PAPERS THEREFOR; PROCESSES OF PREPARING SUCH COMPOSITIONS; CONDITION-RESPONSIVE CONTROL IN MICROBIOLOGICAL OR ENZYMOLOGICAL PROCESSES
- C12Q1/00—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions
- C12Q1/34—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving hydrolase
- C12Q1/44—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving hydrolase involving esterase
- C12Q1/46—Measuring or testing processes involving enzymes, nucleic acids or microorganisms; Compositions therefor; Processes of preparing such compositions involving hydrolase involving esterase involving cholinesterase
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/543—Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals
- G01N33/544—Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals the carrier being organic
- G01N33/548—Carbohydrates, e.g. dextran
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/543—Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals
- G01N33/551—Immunoassay; Biospecific binding assay; Materials therefor with an insoluble carrier for immobilising immunochemicals the carrier being inorganic
- G01N33/552—Glass or silica
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N33/00—Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
- G01N33/48—Biological material, e.g. blood, urine; Haemocytometers
- G01N33/50—Chemical analysis of biological material, e.g. blood, urine; Testing involving biospecific ligand binding methods; Immunological testing
- G01N33/53—Immunoassay; Biospecific binding assay; Materials therefor
- G01N33/569—Immunoassay; Biospecific binding assay; Materials therefor for microorganisms, e.g. protozoa, bacteria, viruses
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2333/00—Assays involving biological materials from specific organisms or of a specific nature
- G01N2333/90—Enzymes; Proenzymes
- G01N2333/914—Hydrolases (3)
- G01N2333/924—Hydrolases (3) acting on glycosyl compounds (3.2)
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2333/00—Assays involving biological materials from specific organisms or of a specific nature
- G01N2333/90—Enzymes; Proenzymes
- G01N2333/914—Hydrolases (3)
- G01N2333/924—Hydrolases (3) acting on glycosyl compounds (3.2)
- G01N2333/938—Hydrolases (3) acting on glycosyl compounds (3.2) acting on beta-galactose-glycoside bonds, e.g. beta-galactosidase
Definitions
- biosensors in particular biosensors comprising reaction zones in which recognition molecules or other assay components are immobilized using biomolecule compatible sol gels and the sol gels, recognition molecules and other assay components are printed on a substrate using ink-jet printing.
- Aerosol spraying can be used for deposition of biomaterials, but is not easily adaptable to formation of millimeter scale patterns or for precise control of sol gel deposits.
- Electrophoretic deposition is normally used for fabrication of electrodes and the process requires an electrically conductive surface. 12 [0005] It has been shown that entrapment of biomolecules within sol- gel derived materials allows proteins to retain their bioactivity for prolonged periods of time. 13 ' 14 Furthermore, sol-gel based materials have previously been shown to be amenable to ink jet deposition (although not with proteins) 15 or screen printing with entrapped enzymes. 16
- Ink jet printing has been used to dispense, deposit or pattern, in either 2D or 3D arrangements cells/tissue, 17 ' 18 DNA, 19 antibodies, 10 and enzymes. 2 ' 15 ' 18
- Novel solid-phase biosensors that utilize ink jet printing of biocompatible sol-gel based inks to create sensor strips have been developed.
- two assays utilizing two different colorimetric detection methods to monitor the activity of the enzyme, acetylcholinesterase (AChE) have been developed, along with an assay to detect the presence of microorganisms such as E. coli and total coliform bacteria.
- the assays all utilize biomolecule compatible sol gel matrixes that have been printed in specific configurations onto substrates, in particular substrates that support lateral flow of solutions.
- the sol gel matrixes are used to immobilize certain recognition elements that are appropriate for the assay to be performed, for example enzymes, functional nucleic acids or other functional biomolecules, substrates for these biomolecules and/or compounds used for detection.
- the recognition elements are printed in between two layers of the biomolecule compatible sol gel matrix.
- the "sol-gel/recognition element/sol-gel" configuration further includes a capture means which is used to restrict movement of the compounds to be detected, improving assay sensitivity.
- the present application includes a biosensor comprising:
- reaction zone immobilized on the substrate, the reaction zone comprising, in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) a recognition element layer; and (iii) a second biomolecule compatible sol gel layer; and (c) a detection means, wherein the first and second biomolecule compatible sol gel layers and the recognition element layer are immobilized on the substrate using ink jet printing.
- the present application also includes a biosensor comprising: (a) a substrate having a first and second end;
- reaction zone comprising, in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) a recognition element layer; and (iii) a second biomolecule compatible sol gel layer, wherein the first and second biomolecule compatible sol gel layers and the recognition element layer are immobilized on the substrate using ink jet printing; and
- a detection means wherein immersion of the first end of the substrate in a solution comprising or suspected of comprising an analyte results in lateral flow of the solution from the first end of the substrate to the second end by capillary action and flow through the at least one reaction zone results in reaction of the analyte with the recognition element, the reaction being detected by the detection means.
- certain reaction zones further include an additional layer comprising a capture agent.
- the reaction zones that benefit from the presence of a capture agent are those that produce a product to be detected, this product being comprised in the detection means.
- the capture agent serves to restrict movement of the product, thereby concentrating the product in the reaction zone to facilitate detection.
- the capture agent is a chemical compound
- the capture agent is printed as a layer under the first sol gel layer (i.e. adjacent to the substrate).
- the capture agent in alternate embodiments, is a physical barrier printed on the substrate around the reaction zones that produce a product to be detected.
- the present application also includes a biosensor for the detection of microorganisms having an intrinsic or recombinant ⁇ - glucuronidase or ⁇ -galactosidase enzyme comprising: (a) a substrate having a first and second end;
- the present application also includes a biosensor for the determining AChE activity or for assaying for AChE modulators comprising
- the present application includes an alternate biosensor for the determining AChE activity or for assaying for AChE modulators comprising (a) a substrate having a first and second end,
- a first reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate ( ⁇ ) a first biomolecule compatible sol gel layer, (n) IPA, and ( ⁇ ) a second biomolecule compatible sol gel layer, and (c) a second reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) AChE; and (iii) a second biomolecule compatible sol gel layer; wherein the first and second reaction zones are arranged so that during lateral flow of a solution from the first end of the substrate to the second end by capillary action, the solution passes through the first reaction zone prior to passing through the second reaction zone.
- the first and second biomolecule compatible sol gel layers, the cationic polymer, the AChE, the DTNB and the IPA are immobilized on the substrate using ink jet printing of solutions comprising these substances, or in the case of the sol gels, precursors for these substances.
- the present application also includes assay methods that utilize the biosensor of the present application.
- the assay is a method of detecting one or more analytes in a sample, wherein the sample comprises or is suspected of comprising the one or more analytes, the method comprising contacting the sample with the biosensor of the application and monitoring the detection means for a positive or negative result, wherein a positive result indicates the presence of the one or more analytes in the sample.
- the detection means is a colormetric method and the positive result is a presence of a color change on the biosensor.
- the present application also includes a method for determining if one or more analytes are modulators of a functional biomolecule comprising:
- the detection means is a colormetric method and the presence of a color change on the biosensor that is different from that on the control biosensor indicates that the one or more analytes are modulators of the functional biomolecule.
- kits comprising the biosensors of the application.
- the kit includes the biosensor and any further reagents for performing an assay using the biosensor.
- the kit includes instructions for using the biosensor in the assay and any controls needed to perform the assay. The controls may be on the biosensor itself, or alternatively, on a separate substrate.
- the kit includes all of the components required to perform any of the assay methods of the present application.
- the present application also includes a method for preparing a biosensor of the application comprising:
- the method comprises depositing a solution comprising a capture agent in the first reaction zone onto the substrate using ink jet printing prior to depositing the first biomolecule compatible sol gel precursor solution or it further comprises depositing a physical barrier around the first reaction zone
- FIG 1 is a schematic representation of the detection principle of the Ellman assay Acetylcholinesterase (AChE) hydrolyzes the acetylthiocholine (ATCh) and forms thiocholine (TCh), which then reacts with dithiobisnitrobenzoate (DTNB) to generate 5-th ⁇ o-2-n ⁇ trobenzoate (TNB, an anion), which is yellow in color
- Figure 2 shows the topography of ink jet sprayed PVAm, and AChE (50 U/mL) and DTNB (500 ⁇ M) doped sodium silicate (SS) thin films on paper
- A Profilometry images of paper that is coated with or without PVAm only (a), and both PVAm and the silica/AChE+DTNB/silica layers
- B SEM images of unmodified (a), modified with PVAm only (b), and modified with
- PVAm sodium silicate
- SS sodium silicate
- DTNB dithiobisnitrobenzoate
- Figure 4 shows the dose-dependent effects of acetylthiocholine
- Figure 5 shows the effects of cationic PVAm on entrapment as well as preservation the anionic TNB in lateral flow-based paper chromatographic system
- the areas within the dashed boxes were printed without (control) and with PVAm (0 5 wt %) followed by printing of AChE (50 U/mL) PVAm concentrates the reaction product, the yellow TNB anion, while in the control experiment, the yellow TNB anion is dispersed over a large area
- Figure 6 demonstrates the dose-dependent inhibition of acetylcholinesterase (AChE) by various concentrations of paraoxon
- Insets are the color intensity (Cl) at each paraoxon concentration and dose- dependent inhibition responses with the lower levels of paraoxon
- Figure 7 shows (a) Dose-dependent inhibition effects of aflatoxin B1 on AChE activity Insets are the color intensity (Cl) at each aflatoxin B1 concentration and dose-dependent inhibition responses with the lower levels of aflatoxin B1 , (b) Semi log plot of the data shown in Panel (a) Data are means ⁇ s d of five independent measurements for each concentration
- Figure 8 shows a schematic diagram of the detection principle of the lndophenyl Acetate (IPA)-based colo ⁇ met ⁇ c assay
- Acetylcholinesterase (AChE) hydrolyzes the red-yellow colored substrate IPA at a basic condition (pH 8 0) and forms indophenoxide anion, which is blue-purple in color
- (b) Schematic illustration for the development of the reagentless bioactive paper- based lateral flow sensor in which AChE and IPA were entrapped in the two dashed boxes regions of Whatman 1 paper strip (1x10 cm) following the sequences of PVAm/silica/AChE/silica and silica/IPA/silica, respectively by using either the ink jet printing or over spotting The sensor then can be used two different ways (1) directly (normal lateral flow-based chromatography) without incubating the contaminated sample, and (2) inverted lateral flow- based chromatography with incubation the sample
- Figure 9 shows the effects of cationic PVAm on entrapment of indophenoxide anion in lateral flow-based paper chromatographic system Colour intensity (Cl) due to elution of IPA (3 mM, final cone ) in the lateral flow based platform
- the areas within the dashed boxes were printed / over spotted without (control) and with PVAm (0 5 wt %) followed by p ⁇ nting/overspotting of AChE (50 U/mL) PVAm concentrates the reaction product, the blue indophenoxide anion, while in the control experiment, the blue indophenoxide anion is dispersed over a large area
- (b) Proof of concept for the development of reagentless bioactive paper-based lateral flow platform, in which the sensor was dipped into dH 2 O to bring up the IPA reagent into sensing region for the generation of blue color
- Figure 10 shows the optimization of [AChE] for the development of paper-based lateral flow sensor, (a)
- Figure 11 shows the dose-dependent inhibition of acetylcholinesterase (AChE) by various concentrations of carbamate (A) and organophosphate (B) pesticides.
- A-(a) and A-(c) show the dose-dependent inhibition responses of bendiocarb and carbaryl, respectively.
- A-(b) and A(d) show the semi log plots of data in panels A-(a) and A-(c), respectively.
- B-(a) and B-(c) show the dose-dependent inhibition responses of paraoxon and malathion, respectively.
- B-(b) and B-(d) show the semi log plots of data in panels B-(a) and B-(c), respectively. All points are means ⁇ s.d.
- Figure 12 shows: (a) Matrix effect in the analysis of paraoxon in milk and apple juice samples. Color intensity decreased with the increased standard paraoxon concentration in milk and apple juice; (b) Real life application of paraoxon, where different concentration of paraoxon solution was sprayed on apple and head lettuce, respectively. After air dry, the deposited paraoxon samples were collected and tested using our developed reagentless sensor.
- Figure 13 shows (a) Schematic diagram of the detection principle of the ⁇ -D-glucoronide (X-Gluc)-based colorimetric assay.
- the chromogenic substrate, X-GLUC is hydrolyzed by GUS to form a dark blue indigo dye.
- a hydrophobic barrier using either MTMS or wax was introduced over the top of the sensing zone to prevent leaching color and/or increase signal intensity.
- the sensor is then dipped into pre-lysed contaminated sample (cell lysate).
- Figure 14 shows the effects of X-Gluc, pH, oxidizing agent (e.g., sodium EDTA, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite, sodium metabisulfite
- Figure 15 shows detection of E. coli BL21 using both non- patterned and patterned paper strips, (a), (b) Color intensity with varying E coli concentrations using non-patterned test trips . Insets are the color intensity (Cl) generated at each cell concentration and the images were taken using office scanner (a), and the camera (b) for the same experiment (c) Different concentrations of E. coli were detected using patterned paper sensor. All points are means ⁇ s.d. of four independent experiments for each concentration.
- Figure 16 shows detection of E coli from coculture.
- B. subtiliss ⁇ 4.1x10 6 CFU/mL
- E coli BL21 -4.1x10 6 CFU/mL
- Figure 17 shows detection of cell in the food samples, in which both 1% milk (a) and orange juice (b) were artificially contaminated with E coli BL21 (4.1 x 10 5 CFU/mL), respectively. The contaminated samples were then treated with B-PER Direct lysing reagent and tested using the bioactive paper sensor. In the negative control experiments, substrate (X-Gluc) was absent.
- biomolecule-compatible it is meant that the silica sol gel either stabilizes proteins, and/or other biomolecules against denaturation or does not facilitate denaturation.
- biomolecule as used herein means any of a wide variety of proteins, enzymes, organic and inorganic chemicals, other sensitive biopolymers including DNA and RNA, and complex systems including whole or portions of plants, animals, microorganisms and cells.
- the term "substrate” as used herein refers to any solid support to which biomolecule compatible sol gel matrixes or other chemical entities can be adhered.
- the substrate comprises a substantially planar surface, and is made of any material that supports lateral flow of a solution.
- the substrate When the solution is aqueous based, the substrate is hydrophilic in nature. Conversely, when the solution is nonaqueous, the substrate is hydrophobic in nature.
- the substrate may be made from, for example, a paper based material.
- the substrate may be made from materials that are naturally hydrophobic, or that have been treated, for example by derivatization with hydrophobic groups, to make them hydrophobic.
- the substrate is made from paper, glass, plastic, polymers, metals, ceramics, alloys or composites.
- the substrate is made from paper or a paper-based material.
- the substrate is in the shape of a rectangular test strip, with the first and second ends being opposed to each other.
- paper or "paper-based material” as used herein refers to a commodity of thin material produced by the amalgamation of fibers, typically plant fibers composed of cellulose, which are subsequently held together by hydrogen bonding. While the fibers used are usually natural in origin, a wide variety of synthetic fibers, such as polypropylene and polyethylene, may be incorporated into paper as a way of imparting desirable physical properties. The most common source of these kinds of fibers is wood pulp from pulpwood trees. Other plant fiber materials, including those of cotton, hemp, linen and rice, may also be used.
- the paper may be hydrophilic or hydrophobic, may have a surface coating, may incorporate fillers that provide desirable physical properties and may be previously modified prior to coating with the ink jet deposited sol-gel materials, by, for example, precoating with a hydrophilic, hydrophobic or charged polymer layer of organic or inorganic origin.
- immobilized of "entrapped” or synonyms thereof, means that movement of the referenced component of the biosensor, is restricted. Immobilization can be accomplished by physical means such as barriers, electrostatic interactions, hydrogen-bonding, bioaffinity, covalent interactions or combinations thereof.
- the term “recognition element” refers to a chemical agent or a combination of chemical agents that specifically reacts with, interacts with or binds to the analyte and is immobilized on the biosensor, between two layers of biomolecule compatible sol gel.
- the recognition element comprises a functional biomolecule that acts on a substrate that is the analyte or, conversely, the recognition element comprises a substrate for a functional biomolecule that is present in the analyte.
- the term “functional biomolecule” refers to molecules, typically found in biological systems, that act or interact with substrates to modify the substrate in some detectable way.
- capture agent refers to a means for immobilizing or restricting the movement of a component of the biosensor.
- the capture agent restricts the movement of a compound to be detected, for example by colorimetric detection. By restricting the movement of a compound to be detected, this compound is more concentrated in a localized area which facilitates detection.
- the capture agent is (bio)chemical agent that has affinity for the compound to be detected.
- the capture agent is a chemical agent having an ionic charge that is opposite to the compound. Selection of suitable chemical capture agents would be within the abilities of a person skilled in the art based on the identity of the compound to be detected.
- the compound to be detected is comprised in the detection means.
- the chemical capture agents are comprised as a layer located below the first sol gel layer in a reaction zone where the compound to be detected is generated by reaction of the analyte with the recognition element.
- the chemical capture agent is an ionic polymer that is printed onto the substrate below the first sol gel layer or, alternatively, is associated with the sol gel matrix.
- a suitable chemical capture agent is a cationic polymer such as polyvinylamine (PVAm).
- the capture agent is selected from any of a wide variety of small molecules, proteins, peptides, enzymes and other sensitive (bio)polymers including DNA and RNA, and complex systems including whole plants, animals, microorganisms and cells, or portions thereof.
- Suitable capture agents including antibodies, other proteins, DNA, DNA aptamers, RNA, RNA aptamers, complexing agents such as EDTA, charged polymers such as polyvinylamine, or molecularly imprinted polymers etc., are well known to those skilled in the art.
- Particular examples of capture agents are, but not limited to, charged polymers: poly(vinylamine), poly(allylamine), poly(ethyleneimine), polylysine, polyarginine, poly(acrylic acid), and poly(glutamic acid).
- the capture agents may also be heteropolymers, block co-polymers, or other macromolecules and may be further modified, for example with biotin, so that they can interact effectively with streptavidin.
- the capture agent is a physical barrier that is printed onto the substrate either before or after the printing of the one or more reaction zones.
- the barrier can be a wax ink that is printed on the substrate in an area that will result in entrapment of the compound to be detected in a specified area around the reaction zone.
- analyte as used herein means any agent, including, but not limited to, small inorganic and organic molecules, biopolymers such as carbohydrates, lipids, DNA, RNA, peptides proteins, cells and micorganisms, for which one would like to sense or detect using a biosensor of the present application.
- the analyte may be isolated from a natural source or be synthetic.
- the term analyte also includes mixtures of compounds or agents such as, but not limited to, combinatorial libraries and samples from an organism or a natural environment.
- sample(s) refers to any material that one wishes to assay using the biosensor of the application.
- the sample may be from any source, for example, any biological (for example human or animal medical samples), environmental (for example water or soil) or natural (for example plants) source, or from any manufactured or synthetic source (for example foods and drinks). It is most convenient for the sample to be a liquid or dissolved in a suitable solvent to make a solution. For quantitative assays, the amount of sample in the solution should be known.
- the sample is one that comprises or is suspected of comprising one or more analytes.
- detection means refers to a means to detect the presence of an analyte. Detection can be performed using any available method, including, for example, colorimetric, electrochemical and/or spectroscopic methods. Conveniently, detection is performed using colorimetric methods including both visual and analytical, using digital imagery.
- the detection means can simply be detection of the direct product formed, for example, by reaction or interaction of a functional biomolecule with a substrate (with either the functional biomolecule or the substrate being the analyte), if the product being formed possesses a color (or any signal) that is intense enough to be detected and that is distinct from the color (or signal) of any of the starting reagents.
- the detection means is not a separate component of the biosensor, but is instead formed during the assay and therefore is an inherent part of the biosensor.
- the detection means comprises the compound to be detected.
- the detection means comprises a separate entity that reacts or interacts with the direct product formed by reaction of, for example, a functional biomolecule with a substrate (with either the functional biomolecule or the substrate being the analyte), the reaction with the separate entity resulting in a distinct detectable signal.
- the detection means comprises a separate entity, it can be located in its own reaction zone or combined with the recognition element.
- organic polyol refers to an organic compound having more than one hydroxy or "OH" group.
- the organic polyol is selected from sugar alcohols, sugar acids, saccharides, oligosaccharides and polysaccharides. Simple saccharides are also known as carbohydrates or sugars. Carbohydrates may be defined as polyhydroxy aldehydes or ketones or substances that hydrolyse to yield such compounds.
- the polyol may be a monosaccharide, the simplest of the sugars or a carbohydrate.
- the monosaccharide may be any aldo- or keto-triose, pentose, hexose or heptose, in either the open-chained or cyclic form.
- monosaccharides that may be used in the present application include, but are not limited to allose, altrose, glucose, mannose, gulose, idose, galactose, talose, ribose, arabinose, xylose, lyxose, threose, erythrose, glyceraldehydes, sorbose, fructose, dextrose, levulose and sorbitol.
- the polyol may also be a disaccharide, for example, but not limited to sucrose, maltose, trehalose, cellobiose or lactose.
- Polyols also include polysaccharides, for example, but not limited to dextran, (500-50,000 MW), amylose and pectin and the like.
- Other organic polyols that may be used include, but are not limited to glycerol, propylene glycol and trimethylene glycol.
- aryloxy as used herein means phenoxy or naphthyloxy wherein, the phenyl and naphthyl groups may be optionally substituted with 1-5 groups, specifically 1-3 groups, independently selected from the group consisting of halo (fluoro, bromo, chloro or iodo), C- ⁇ - 6 alkyl, C 1- ealkoxy, OH, NH 2 , N(C 1-6 alkyl) 2 , NHC 1-6 alkyl. C(O)C 1-6 alkyl.
- arylalkyleneoxy as used herein means aryl-(C 1-4 )-oxy wherein aryl has the same meaning as in “aryloxy”. Specifically, “arylalkyleneoxy” is a benzyl or naphthylmethyl group (i.e. aryl-CH 2 -O).
- normal sol-gel conditions it is meant the conditions used herein to effect hydrolysis and condensation of the sol gel precursors, such as organic polyol derived silanes. This includes, in aqueous solution, at a pH in the range of 4-11.5, specifically in the range 5-10, and temperatures in the range of 0-80 oC, and specifically in the range 0-40 oC, and optionally with sonication and/or in the presence of catalysts known to those skilled in the art, including acids, amines, dialkyltin esters, titanates, etc.
- catalysts known to those skilled in the art, including acids, amines, dialkyltin esters, titanates, etc.
- composition containing "a chimeric peptide” includes one such peptide or a mixture of two or more peptides.
- suitable means that the selection of the particular conditions would depend on the specific method to be performed, but the selection would be well within the skill of a person trained in the art All method or process steps described herein are to be conducted under conditions sufficient to provide the desired result Unless otherwise indicated, a person skilled in the art would understand that all method conditions, including, for example, solvent, time, temperature, pressure, reactant ratio and whether or not the method should be performed under an anhydrous or inert atmosphere, can be varied to optimize the desired result and it is within their skill to do so
- Organophosphates e.g., paraoxon
- mycotoxins e.g., aflatoxin B1
- Organophosphate compounds are widely used as agricultural pesticides, insecticides and chemical warfare agents. These compounds are very stable and can rapidly diffuse into ground water reservoirs and thus exhibit a threat of contamination.
- Mycotoxins particularly aflatoxin B1 (AfB1)
- AfB1 are carcinogenic contaminants of food and animal feeds and as such are used as biochemical markers for food spoilage.
- a signal generation method utilizing the Ellman 22 colorimetric assay ( Figure 1) was developed.
- a cationic capture region was incorporated onto paper substrates via ink jet printing of polyvinylamine (PVAm).
- PVAm polyvinylamine
- AChE hydrolyzes the red-yellow colored substrate, IPA, to the blue-purple indophenoxide anion (IDO-) which is then trapped over a finite region by the cationic polymer, polyvinyl amine (PVAm). The absence or decrease in blue- purple color, over this region, is indicative of the presence of AChE inhibitors.
- This paper-based sensor does not require any further reagents for proper functioning, as all reagents are deposited onto the paper surface with good long-term stability.
- a third model biosensor was developed for the detection of any microorganism having a ⁇ -glucuronidase (GUS) enzyme, including, for example, E. coli.
- GUS ⁇ -glucuronidase
- the chromogenic substrate 5-bromo-4- chloro-3-indolyl- ⁇ -D-glucuronide (X-GLUC) was immobilized in one reaction zone and an oxidizing reagent (FeCI 3 ) was immobilized in a separate reaction zone.
- a solution comprising, or suspected of comprising, a microorganism having GUS was treated to lyse the microorganism and a lateral flow-based biosensor was placed into the solution to allow lateral flow of the solution up the sensor by capillary action. The flow of the solution passes through the oxidizing agent zone first and the X-GLUC zone second.
- the GUS enzyme When the microorganism passes into the X-GLUC zone, the GUS enzyme, if present, will hydrolyse the X-GLUC to form a halogenated indoxyl intermediate which then dimerizes (via oxidation) to form a dark blue indigo dye.
- the use of the oxidizing agent in this assay is unique and advantageously provided faster response times. If the microorganism was present in the solution, a dark blue color from the indigo dye was detected in the X-GLUC reaction zone.
- the capture agent, PVAm was incorporated into the X-GLUC reaction zone, or hydrophobic barriers were pre-printed on to the biosensor in an area around the reaction zone.
- biosensors reported herein can be prepared by printing of biomolecule compatible sol gels onto the substrates.
- ink jet printing methods were used, in particular piezoelectric ink jet printing, to print layers of biomolecule compatible sol gels onto specific reaction zones on the substrates. The location of the reaction zones depended on the specific arrangements required for the assay in question.
- the assays were based on lateral flow of a solution up the substrate by capillary action, passing through the one or more reaction zones, wherein the solution comprised, or was suspected of comprising, an analyte to be detected.
- the biosensors were also amenable to dip-stick type assay formats.
- the present application includes a biosensor comprising:
- reaction zone comprising, in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) a recognition element layer; and (iii) a second biomolecule compatible sol gel layer; and
- the present application also includes a biosensor comprising (a) a substrate having a first and second end,
- reaction zone comprising, in order, beginning adjacent to the substrate ( ⁇ ) a first biomolecule compatible sol gel layer, (n) a recognition element layer, and (in) a second biomolecule compatible sol gel layer, wherein the first and second biomolecule compatible sol gel layers and the recognition element layer are immobilized on the substrate using ink jet printing, and
- the ink jet printing technique is simple, rapid, scalable, compatible with paper substrates and amenable to precise pattern formation
- One factor to consider for ink jet printing is the formulation of the bioink and its rheological properties, in particular the viscosity and surface tension
- Several additives can be introduced in the ink formulations to optimize the physical properties and to make them stable and ejectable
- Printing of biocompatible sol-gel derived inks is an even larger challenge since short gelation times of silica sols can cause gelation and clogging of the ink jet nozzles At physiological pH, where most enzymes thrive, gelation of most biocompatible sol-gel precursors occurs within a minute to a few hours depending on buffer strength and type or additives being used.
- certain reaction zones further include an additional layer comprising a capture agent.
- the reaction zones that benefit from the presence of a capture agent are those that produce a product to be detected.
- the capture agent serves to restrict movement of the product, thereby concentrating the product in the reaction zone to facilitate detection.
- the capture agent is a chemical compound
- the capture agent is printed as a layer under the first sol gel layer (i.e. adjacent to the substrate).
- the biomolecule compatible silica sols and recognition elements are immobilized on the substrate by printing aqueous solutions of these entities that optionally include one or more additives.
- the additives are used to optimize the rheological properties to allow reproducible jetting onto the substrates.
- Physico-chemical properties such as surface tension and viscosity are examples of parameters that can be optimized to make the solutions (also referred to as "inks") stable and ejectable.
- Such additives include surfactants and viscosity modifiers.
- additives such as surfactants are included to adjust the surface tension of the inks to a printable range (for example, about, 30-40 mN.m -1 ) if adjustment is required.
- the surfactant is a mild detergent such as Triton X-100.
- the detergent is used in an amount of about 0.05 wt% to about 1 wt %, or about 0.1 wt %.
- additives are included to adjust the ink viscosity to a desired value (for example, about 2-10 cP) if adjustment is required.
- the viscosity-modifying additive is glycerol.
- glycerol is used in an amount of about 20% (v/v) to about 50% (v/v), or about 30% (v/v)
- the biomolecule-compatible sol gels are is prepared using biomolecule-compatible techniques, i.e. the preparation involves biomolecule-compatible silica precursors and reaction conditions that are biomolecule-compatible.
- the biomolecule-compatible sol gel is prepared from a sodium silicate precursor solution.
- the preparation of sodium silicate solutions for use as a sol-gel precursor is known in the art.
- the sol gel is prepared from organic polyol silane precursors. Examples of the preparation of biomolecule-compatible sol gels from organic polyol silane precursors are described in inventor Brennan's co-pending patent applications entitled "Polyol-Modified Silanes as Precursors for Silica", U.S. patent application publication no.
- the organic polyol silane precursor is prepared by reacting an alkoxysilane, for example tetraethoxysilane (TEOS) or tetramethoxysilane (TMOS), with an organic polyol under conditions that avoids hydrolysis and condensation of the resulting precursor silane.
- TEOS tetraethoxysilane
- TMOS tetramethoxysilane
- Such conditions include reacting the alkoxy silane with the organic polyol under anhydrous conditions.
- the organic polyol silane precursor is desirably non-oligomeric so that optimal control over phase separation and gelation times is provided to permit greater control over the morphology of the resulting sol gel materials.
- the organic polyol is selected from glycerol, sorbitol, maltose and dextran.
- Some representative examples of the resulting polyol silane precursors suitable for use in the methods of the application include one or more of diglycerylsilane (DGS), monosorbitylsilane (MSS), monomaltosylsilane (MMS), dimaltosylsilane (DMS) or dextran-based silane (DS).
- the polyol silane precursor is selected from one or more of DGS and MSS.
- the sol-gel precursors are combined with an additive which causes spinodal decomposition (phase transition) before gelation, to provide macroporous silica matrixes.
- Macroporous silica can be used to entrap reagents with large molecular weights, i.e. those molecules that are large enough to not leach from the sol gel.
- Methods of forming macroporous silica, in particular, from polyol-modified silane precursors are described in inventor Brennan's co- pending patent application entitled "Methods and Compounds for Controlling the Morphology and Shrinkage of Silica Derived from Polyol-Modified Silanes", U.S. CIP patent application publication no.
- the sol-gel precursor is combined with one or more water soluble polymers which causes spinodal decomposition (phase transition) before gelation.
- the water soluble polymer may be selected from any such compound and includes, but is not limited to, for example, polyethylene oxide (PEO); polyethylene glycol (PEG); amino-terminated polyethylene glycol (PEG-NH 2 ); amino-terminated polyethylene oxide (PEO-NH 2 ); polypropylene glycol (PPG); polypropylene oxide (PPO); polypropylene glycol bis(2-amino- propyl ether) (PPG-NH 2 ); polyalcohols, for example, polyvinyl alcohol; polysaccharides; polyvinyl pyridine); polyacids, for example, poly(acrylic acid); polyacrylamides e.g.
- the water soluble polymer is selected from PEO, PEO-NH 2 , PEG, PPG-NH 2 , polyNIPAM and PAM, and mixtures thereof.
- the water soluble polymer is selected from PEO, PEO-NH 2 and polyNIPAM, and mixtures thereof.
- the water soluble polymer is PEO, for example PEO having a molecular weight between about 2000 - 100000 Da, suitably between about 5000 and 50000 Da, more suitably between about 8000 and 15000 Da.
- water soluble it is meant that the polymer is capable of being formed into an aqueous solution having a concentration effective to result in phase separation occurring before gelation.
- oxide as in polyethylene oxide
- glycol as in polyethylene glycol
- Sol gels may also be obtained by combining the sol-gel precursors, in particular organic polyol silane precursors, with one or more compounds of Formula I:
- R 1 , R 2 and R 3 are the same or different and represent a group that is hydrolyzed under normal sol-gel conditions to provide Si-OH groups; and R 4 is group selected from polyol-(linker)-, polymer-(linker) n - and
- OR 1 , OR 2 and/or OR 3 are the same or different and are derived from organic mono-, di-, or polyols.
- the group OR 1 , OR 2 and/or OR 3 are derived from a polyol selected from glycerol, sorbitol, maltose, trehalose, glucose, sucrose, amylose, pectin, lactose, fructose, dextrose and dextran and the like.
- the organic polyol is selected from glycerol, sorbitol, maltose and dextran.
- OR 1 , OR 2 and OR 3 are the same and are selected from C-i- 4 alkoxy, for example, methoxy or ethoxy, aryloxy and arylalkyleneoxy.
- OR 1 , OR 2 and OR 3 are all ethoxy. It will be apparent to those skilled in the art that other leaving groups such as chloride or silazane may also be used for the formation of silica according to the methods described in the application.
- the groups OR 1 , OR 2 and OR 3 are capable of participating directly in the hydrolysis/polycondensation reaction.
- these functional groups are alkoxy groups attached to the silicon atom at oxygen, i.e., "Si-OR", which may be hydrolyzed to provide "Si-O-H", which can condense with other "Si-O-H” or “Si-OR” groups to provide "Si-O- Si” linkages and eventually a three-dimensional network within a gel.
- Trifunctional silanes form silsesquioxanes upon hydrolysis and there is a lower degree of crosslinking in systems derived therefrom, in particular when compared with systems derived from tetrafunctional silanes.
- the remaining group attached to the silicon atom (R 4 ) is a group that generally does not participate directly in the hydrolysis/polycondensation reaction.
- R 4 is a group that is not hydrolyzed under normal sol-gel conditions and preferably is stabilizing to biological substances, in particular proteins.
- R 4 is selected from one of the following groups: polyol-(linker)-; polymer-(linker)n-; and
- n 0-1 and OR 1 , OR 2 and OR 3 are as defined above.
- the term "polyol" in R 4 has the same definition as described above for the groups OR 1 , OR 2 and OR 3 .
- the polyol is derived from glucose or maltose.
- polymer in R 4 refers to any water soluble polymer, such as, but not limited to: polyethers, for example, polyethylene oxide (PEO); amino-terminated polyethylene oxide (PEO-NH 2 ); polyethylene glycol (PEG); polyethylene glycol bis(2-amino-propyl ether) (PEG-NH 2 ); polypropylene glycol (PPG); polypropylene oxide (PPO); polypropylene glycol bis(2-amino-propyl ether) (PPG-NH 2 ); polyalcohols, for example, polyvinyl alcohol; polysaccharides; poly(vinyl pyridine); polyacids, for example, poly(acrylic acid); polyacrylamides e.g.
- polyethers for example, polyethylene oxide (PEO); amino-terminated polyethylene oxide (PEO-NH 2 ); polyethylene glycol (PEG); polyethylene glycol bis(2-amino-propyl ether) (PEG-NH 2 ); polypropylene glycol (
- poly(N-isopropylacrylamide) polyNIPAM
- polyallylamine PAM
- the polymer is a water soluble polyether such as PEO.
- the sugar and polymer residues may be attached to the silicon atom through any number of linkers.
- OR 1 , OR 2 and OR 3 are compounds 5 shown in Scheme 3.
- Compounds 5 can be prepared, for example, by reacting poly(ethylene oxide), first with allyl bromide (or any other suitable allylating reagent), followed by reaction with a trialkoxy-, triarylalkyleneoxy- or triaryloxysilane, in the presence of a catalyst, such as a platinum-derived catalyst, as shown in Scheme 3.
- a catalyst such as a platinum-derived catalyst
- the biomolecule- compatible sol gel precursor is selected from one or more of functionalized or non-functionalized alkoxysilanes, polyolsilanes or sugarsilanes, functionalized or non-functionalized bis-silanes of the structure (RO) 3 S ⁇ -R'-S ⁇ (OR) 3 , where R may be ethoxy, methoxy or other alkoxy, polyol or sugar groups and R' is a functional group containing at least one carbon (examples may include hydrocarbons, polyethers, amino acids or any other non-hydrolyzable group that can form a covalent bond to silicon), functionalized or non-functionalized chlorosilanes, and sugar, polymer, polyol or amino acid substituted silicates
- the biomolecule compatible sol gel precursor solution comprises an effective amount of one or more other additives
- the other additives are present in an amount to enhance the mechanical, chemical and/or thermal stability of the matrix and/or assay components
- the mechanical, chemical and/or thermal stability is imparted by a combination of precursors and/or additives, and by choice of aging and drying methods. Such techniques are known to those skilled in the art.
- the additives are selected from one or more of humectants and other protein stabilizing agents (for e.g. osmolytes).
- Such additives include, for example, one or more of organic polyols, hydrophilic, hydrophobic, neutral or charged organic polymers, block or random co-polymers, polyelectrolytes, sugars (natural or synthetic), and amino acids (natural and synthetic).
- the one or more additives are selected from one or more of glycerol, sorbitol, sarcosine and polyethylene glycol (PEG).
- the additive is glycerol.
- the biocompatible sol gel is a silica based glass prepared from a polyol modified silane, for example, diglyceryl silane, or sodium silicate precursor solution.
- the precursor solution is prepared according to methods available in the art, for example about 1 g to about 5 g, suitably about 3.0 g, of sodium silicate is dissolved in about 10 ml_ of doubly distilled water (DDH2O) followed by addition of about 5 g of Dowex cation exchange resin to replace the sodium ions with protons and stirring until a pH of approximately 4 is reached.
- DDH2O doubly distilled water
- Dowex cation exchange resin to replace the sodium ions with protons and stirring until a pH of approximately 4 is reached.
- the resulting sol is then filted to remove any fine particulates that could interfere with ink jetting.
- the organic polyol silane precursor solution is prepared by dissolving about 0.1 g to about 2.0 g, suitably about 1.0 g, of polyol silane, such as DGS, in about 10 ml_ of ddh ⁇ O, followed by sonication. Again, the resulting sol is then filted to remove any fine particulates that could interfere with ink jetting.
- polyol silane such as DGS
- the amounts of precursor and water may increase proportionally to provide precursor solutions of approximately the same concentration.
- the biomolecule- compatible sol gel layers were printed using a solution, or an ink, comprising about 30 % (v/v) glycerol and about 0.1 wt% Triton-X100 and sodium silicate.
- a solution or an ink, comprising about 30 % (v/v) glycerol and about 0.1 wt% Triton-X100 and sodium silicate.
- Depositing or printing of the solutions (reagents, capture agents or sol gel precursors) on the substrate was performed using ink jet printing.
- the ink jet printing is performed using a piezoelectric ink jet printer equipped with means to control the location of the inks being printed. Each different solution is printed using a separate printing cartridge.
- the assays that may be performed using the biosensors of the present application include any assay based on an interaction between a functional biomolecule and its corresponding substrate that is amenable to detection.
- the functional biomolecule is an enzyme.
- Non- limiting and some of their known substrates and detection systems are as follows:
- a self-contained portable bioactive lab-on-paper sensor for sensitive visual detection of microorganisms based on the activity of an enzyme that is unique to the microorganism activity has been prepared.
- the enzyme ⁇ -glucuronidase is endogenous to E. coli BL21 and K12, as well as salmonella
- ⁇ -galactosidase is endogenous to E. coli H7O157 and these enzymes can be used as detection means for these microorganisms.
- the assay system was composed of a test strip, in which a chromogenic substrate for the ⁇ -glucuronidase, X-GLUC, and an oxidizing agent, such as FeCl 3 , were entrapped using sol-gel derived silica inks in two different zones. Detection was achieved by eye, using a digital camera, or by an office scanner and image analysis software, avoiding the need for instrumentation or trained personnel.
- the assay provided good detection limits ( ⁇ 4x10 3 CFU/mL) and rapid response times ( ⁇ 5 min) and remained stable and reproducible after storage in room temperature for at least 60 days, making the system suitable for storage and use in the field.
- Patterned paper sensors showed a higher sensitivity (LOD > 2 fold) than that of non-patterned sensors.
- the assay system showed a negligible matrix effect with artificially E. coli contaminated milk and orange juice samples, provided that pH was adjusted to a suitable range close to pH 8.0.
- this novel paper strip biosensor provides a fast and convenient method for the visual detection of microorganisms comprising a ⁇ - glucuronidase, such as E. coli, which could be employed for first level screening of a variety of environmental and food samples, thus it could be a component of a simple and inexpensive field kit. Similar test strips could be prepared for other microorganisms.
- the present application therefore includes a biosensor for the detection of microorganisms having an intrinsic or recombinant ⁇ - glucuronidase or ⁇ -galactosidase enzyme comprising: (a) a substrate having a first and second end;
- a first reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) an oxidizing agent; and (iii) a second biomolecule compatible sol gel layer; (c) a second reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate ( ⁇ ) a first biomolecule compatible sol gel layer, (n) a chromogenic substrate for the enzyme and (in) a second biomolecule compatible sol gel layer, wherein immersion of the first end of the substrate in a solution comprising or suspected of comprising the microorganisms, and that has been treated to lyse the microorganisms, results in lateral flow of the solution from the first end of the substrate to the second end of the substrate by capillary action, the flow passing through the first reaction zone prior to passing through the second reaction zone
- the first and second biomolecule compatible sol gel layers, the oxidizing agent and the a chromogenic substrate for the substrate are immobilized on the substrate using ink jet printing of solutions comprising these substances, or in the case of the sol gels, precursors for these substances
- the chromogenic substrate for the enzymes is one that, when reacted with the enzyme produces a product that is oxidized by the oxidizing agent to a colored product that is detected
- the chromogenic substrate for ⁇ -glucuronidase is 5-bromo-4-chloro-3- ⁇ ndolyl- ⁇ -D- glucuronide (X-GLUC) and the chromogenic substrate for ⁇ -galactosidase is bromo-chloro-indolyl-galactopyranoside (X-GAL)
- Other chromogenic substrates include, for example, 5-bromo-3- ⁇ ndolyl ⁇ -D-galactopyranoside (Bluo-Gla), 5-bromo-6-chloro-3- ⁇ ndolyl ⁇ -D-galactopryaniside (Magenta-Gal), 6-chloro-3- ⁇ ndolyl ⁇ -D-galactopyranoside (Salmon-G
- the solution comprising the microorganism may be a sample taken directly from, for example the environment, a patient or food, or the sample can be pre-treated to concentrate the microorganism or to remove undesired materials.
- lytic reagents include, for example, lytic bacteriophage, lysozyme or detergents. Contacting the resulting lysed solution with the biosensor will result in reaction of the functional biomolecule with the immobilized substrate, the reaction being detected by the detection means if the microorganism is present in the sample.
- the lytic reagent is immobilized in a reaction zone on the biosensor, which is deposited by ink-jet printing at a location such that the solution passes through this zone prior passing through the substrate zone by lateral flow. Therefore the present application further includes a a biosensor for the detection of microorganisms having an intrinsic or recombinant ⁇ -glucuronidase or ⁇ -galactosidase enzyme comprising:
- a second reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) an oxidizing agent; and (iii) a second biomolecule compatible sol gel layer;
- a third reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) a chromogenic substrate for the enzyme and (iii) a second biomolecule compatible sol gel layer;
- the first and second biomolecule compatible sol gel layers, the oxidizing agent, the chromogenic substrate for the substrate and the lytic reagent are immobilized on the substrate using ink jet printing of solutions comprising these substances, or in the case of the sol gels, precursors for these substances.
- the present application includes a biosensor for the determining AChE activity or for assaying for AChE modulators comprising:
- a first reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a cationic polymer; (ii) a first biomolecule compatible sol gel layer; (iii) AChE and DTNB; and (iv) a second biomolecule compatible sol gel layer.
- the present application includes an alternate biosensor for the determining AChE activity or for assaying for AChE modulators comprising:
- a first reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) IPA; and (iii) a second biomolecule compatible sol gel layer; and
- a second reaction zone immobilized on the substrate comprising in order, beginning adjacent to the substrate: (i) a first biomolecule compatible sol gel layer; (ii) AChE; and (iii) a second biomolecule compatible sol gel layer; wherein the first and second reaction zones are arranged so that during lateral flow of a solution from the first end of the substrate to the second end by capillary action, the solution passes through the first reaction zone prior to passing through the second reaction zone
- the first and second biomolecule compatible sol gel layers, the cationic polymer, the AChE, the DTNB and the IPA are immobilized on the substrate using ink jet printing of solutions comprising these substances, or in the case of the sol gels, precursors for these substances
- the present application also includes assay methods that utilize the biosensor of the present application
- the assay is a method of detecting one or more analytes in a sample, wherein the sample comprises or is suspected of comprising the one or more analytes, the method comprising contacting the sample with the biosensor of the application and monitoring the detection means for a positive or negative result, wherein a positive result indicates the presence of the one or more analytes in the sample
- the detection means is a colormetric method and the positive result is a presence of a color change on the biosensor
- a non-limiting example of such an assay is the testing of a sample, such as a food or environmental sample (such as water) for the presence of one or more pathogenic microorganisms
- the biosensor will have immobilized in one of the reaction zones, a substrate for a functional biomolecule, such as an enzyme, that is representative of the microorganism
- a functional biomolecule such as an enzyme
- the microorganism is optionally preconcentrated by methods known to those skilled in the art (e g , magnetic bead based preconcentration or filter based preconcentration)
- a solution is prepared containing the sample and the solution is treated with lytic reagents that will break apart the microorganism, releasing its internal contents which include the functional biomolecule
- lytic reagents include, for example, lytic bacteriophage, lysozyme or detergents Contacting the resulting lysed solution with the biosensor will result in reaction of the functional biomolecule with the immobilized substrate, the reaction being detected by the detection means if
- the functional biomolecule is the enzyme ⁇ - glucuronidase or ⁇ -galactosidase, which are found only E. coli and coliform bacteria.
- the lytic reagent is immobilized in a reaction zone on the biosensor, which is deposited by ink-jet printing and the sample solution passes through this zone prior passing through the substrate zone by lateral flow.
- biosensors comprising reagents that allow for detection of specific enzymes that may be biomarkers associated with disease. Such enzymes may be present in any biological sample, including tissue, blood, urine, tears, saliva or sweat or within microorganisms.
- the enzyme is acetylcholinesterase (AChE), a protease such as urokinase plasminogen activator (UPa), which is upregulated in metastatic breast cancer, or kinases such as adenosine triphosphatase (ATPase), protein kinase A (PKA) or glycogen synthase kinase-3 (GSK-3), which are upregulated in certain disease states.
- a substrate for the enzyme and a suitable reporter molecule (detection means) are printed onto a substrate within a suitable matrix using ink-jet methods as described above.
- Suitable substrates and reporters include IPA for AChE, S-2244 for uPA, ATP- ⁇ S/DTNB for ATPases and kinases, and X-GLUC and X-GAL for ⁇ -glucuronidase or ⁇ - galactosidase, though other colorimetric reagents suitable for assaying such enzymes are known to those skilled in the art and are included within the scope of the application.
- the biosensor is contacted with the sample or a solution prepared from the sample and the analytes in the sample solution are allowed to move up the biosensor by lateral flow or the biosensor is simply dipped into the sample or the sample solution. Enzymes that are present within the sample will contact the reaction zone(s) containing the substrate and detection means and will produce a change, such as a color change that can be correlated to the presence and concentration of the enzyme.
- lysis of a microorganism can also release ATP.
- a reaction zone may contain ATPase and malachite green.
- the reaction zone may contain adenylate kinase to convert AMP + ATP to two molecules of ADP, while another zone contains polyphosphate kinase to convert ADP back to ATP (ATP amplification) while a further zone contains a colorimetric reagent for ATP detection.
- Another alternative is to use a colorimetric assay based on oxidation of Fe(II) to Fe(III), which forms a colored complex with xylenol orange (XO).
- a reaction zone contains adenylate kinase (AK) and pyruvate kinase (PK) to amplify the amount of ATP and produce pyruvate.
- AK adenylate kinase
- PK pyruvate kinase
- the same zone or another zone can contain pyruvate oxidase to generate H 2 O 2 which oxidizes entrapped Fe(II) to Fe(III).
- the Fe(III) can form a complex with xylenol-orange (XO) so the colour of the dye changes from yellow to purple.
- Other colorimetric assays for ATP can also be employed and are within the scope of the application.
- reaction zones are also possible, as would be apparent to one skilled in the art.
- the present disclosure therefore includes an assay method for the detection of potentially pathogenic organisms, for example, E. coli, in, for example blood, tissue, air, water and food samples.
- the development of low-cost, portable and technically straightforward assay technologies is beneficial in a number of areas, including rapid testing of food or water quality, point-of-care diagnostics (i.e. field or home setting), or the rapid detection of bioterror agents. Development of such bioassays could also be useful for performing routine analysis in underdeveloped countries, or as an alternative to more expensive technologies for rapid testing in emergency situations. 25
- the present application also includes a method for determining if one or more analytes are modulators of a functional biomolecule comprising: (a) contacting a solution comprising the one or more analytes with a reaction zone on a biosensor of the application, wherein the reaction zone comprises the functional biomolecule;
- the detection means is a colormetric method and the presence of a color change on the biosensor that is different from that on the control biosensor indicates that the one or more analytes are modulators of the functional biomolecule.
- Control biosensors are typically identical biosensors treated in the same way as the biosensor contacted with the solution comprising the one or more analytes, except that it is not contacted with the solutuon.
- Other controls include biosensors without the functional biomolecule or substrate.
- a reporter molecule detection means
- the enzyme acetylcholinesterase acts on its substrate, acetylthiocholine (ATCh) in a sample to produce thiocholine which reduces 5,5'-dithiobis-(2-nitrobenzoic acid) (DTNB) to thionitrobenzoate.
- the yellow colored thionitrobenzoate can be captured on cationic zone, for example a poly(vinylamine) (PVA) coated zone, (capture means) of the test strip to concentrate the color into a defined area.
- PVA poly(vinylamine)
- the biosensor is initially contacted, in the reaction zone comprising the functional biomolecular, with a solution comprising one or more analytes that modulate, or are suspected of modulating, the activity of the functional biomolecule prior to contacting the reaction zone or with the one or more analytes
- a change such as a change in color
- the reaction zones contain reagents to allow detection of an analyte using colorimetric detection of the products of a reaction involving rolling circle amplification (RCA) or a primer that is exposed upon interaction of an aptamer, DNA enzyme or aptazyme (collectively referred to as a functional nucleic acid) with a target analyte.
- the reaction zones are placed in the following order: (i) functional nucleic acid; (ii) ⁇ 29 DNA polymerase, circular template and dNTPs; (iii) gold nanoparticle labeled linear DNA of the same sequence as the circular template (or a portion thereof) each sandwiched between two layers of biomolecule compitalbe sol gel.
- the assay is performed by placing the end of a lateral flow- based biosensor into a test solution.
- Analytes in the test solution first reach the functional nucleic acid and cause a structure-switching event or catalysis of cleavage of a suitable substrate.
- This reaction results in the release of a segment of DNA that flows to the second reaction zone containing the polymerase, dNTPs and circular template.
- the segment released is complementary to a portion of the circular template and thus acts as a primer to initiate the RCA reaction in the second reaction zone.
- the RCA product is detected by either moving the RCA product to the gold nanoparticle zone, or inverting the lateral flow device and flowing the gold nanoparticles into the zone containing the RCA product.
- the AuNP- labelled complementary DNA will initially be in a de-aggregated state and thus will be red in color.
- the AuNPs Upon hybridizing with the RCA product the AuNPs will be in close contact and thus will form blue colored aggregates. Formation of the blue colored aggregates indicates the presence of the target analyte in the test solution.
- the analytes may be any analyte of interest in the biomedical, environmental, bioterror or agricultural fields.
- the analyte may also be a biomarker associated with a specific disease state, a microorganism or a metabolite present in a microorganism, a gene or a gene product.
- the analyte may be present in any test solution, including tissue, blood, urine, tears, saliva or sweat, or in food, water, soil or other samples.
- when the change is a color change it may be quantified, for example, using a digital camera with a macrofocus lens and using standard image analysis software.
- the analyte may be contacted with the biosensor using either lateral flow of the analyte solution up the substrate via capillary action, overspotting of analyte solution onto the biosensor (i.e., with a pipette) or dipping the biosensor into the analyte solution.
- a series of reaction zones can be placed on a test strip to allow multi-step reactions to occur as a result of lateral flow of analyte along the biosensor.
- ink-jet printing is used to print different reaction zones onto a biosensor in a manner that allows movement of reactants from one area to another by capillary flow.
- the chromogenic substrate IPA can be printed in one zone and AChE can be printed in a second zone, while PVAm is printed either in the same zone as AChE or in a separate region.
- the IPA, AChE and PVAm zones are printed such that lateral flow of liquid upon contacting an analyte test solution will result in liquid reaching the IPA zone first, transporting the IPA to the AChE zone to undergo reaction with the enzyme, and the product is then transported to the PVAm capture zone to allow detection of a color change.
- the IPA, AChE and PVAm zones are printed such that lateral flow of an analyte solution will cause analytes to first contact the AChE zone when one end of the biosensor is placed in contact with the analyte solution, allowing for incubation of analytes with the enzyme.
- test strip can then be placed in the analyte solution to allow lateral flow of liquid into a reaction zone containing IPA so that the IPA is transported into the AChE region.
- Any product that is produced can be captured by a PVAm layer that is directly below the AChE-containing sol-gel.
- slow inhibitors of the enzyme can be detected by measuring the color change in the presence of the analyte solution and comparing it to the color of controls that have no analyte compounds present or no enzyme present.
- Example 1 Development of bioactive paper sensors using piezoelectric ink jet printing of sol gel derived bioinks
- Anhydrous glycerol and acetylthiocholine iodide were purchased from Fluka BioChemika Ultra (UK).
- Diglyceryl silane (DGS) was synthesized in our lab using by transesterification of TEOS with anhydrous glycerol as described in detail elsewhere.
- 26 Polyvinylamine (PVAm; 1.5 MDa) was obtained from BASF (Mississauga, Canada), as a gift.
- Mead brand cardboard paper substrate with a white hydrophobic clay coating Manufactured by Hilroy, Toronto, Canada
- Distilled deionized water (ddH 2 O) was obtained from a MiIIi-Q Synthesis A10 water purification system. All other reagents were of analytical grade.
- DGS sols were made by mixing 10 ml_ of ddH 2 O with 1 g of finely ground DGS. The mixture was sonicated on ice bath for 20 min to dissolve the DGS and then filtered through a 0.22 ⁇ m membrane syringe filter to remove any particulates in the solution.
- SS sols were prepared by mixing 10 ml_ of ddH 2 O with 2.9 g of sodium silicate solution (pH ⁇ 13) followed by addition of 5 g of Dowex cation exchange resin to replace Na + with H + . The mixture was stirred for 30 seconds to reach a final pH of ⁇ 4, and then vacuum filtered through a B ⁇ chner funnel. The filtrate was then further filtered through a 0.45 ⁇ m membrane syringe filter. These sols were used to formulate silica-containing inks as described below.
- the different printing solutions were modified by addition of glycerol to control viscosity and Triton X-100 to control surface tension so as to optimize the printing performance (ability to jet the inks) as well as the enzyme activity, as described below.
- addition of glycerol to PVAm inks was not necessary as the viscosity of an aqueous solution of this polymer was on the order of 3 cP. This high viscosity of the 0.5 wt% solution is likely due to the high molecular weight (ca. 1.5 MDa) of the polymer.
- the solutions were deposited using a piezoelectric ink jet printer (DMP-2800) from Fujifilm Dimatix, lnc (Japan) using Drop Manager software (version 1.3.0.7).
- DMP-2800 piezoelectric ink jet printer
- This system has a microelectromechanical system (MEMS)-based cartridge-style printhead that allows filling with desired bioinks (ca. 0.5-2 ml_).
- MEMS microelectromechanical system
- Each cartridge has 16 nozzles linearly spaced at 254 microns with typical drop sizes of 1-10 pL.
- the instrument is equipped with a drop imaging system (Drop Watcher) that allows observation and capture of the events during drop formation on the printhead nozzles and the trajectory of the drops after ejection. Jetting conditions are described in Table 1.
- bioactive inks were printed by applying 16 piezo firings with one printing cycle per ink in a stepwise fashion as a 0.25 x 0.25 cm square pattern onto Mead brand cardboard (paper substrate, 10 x 8 cm) using a separate cartridge for each of the PVAm, silica and enzyme "inks".
- a buffer that did not contain AChE was printed between the silica layers.
- Other controls involved printing of AChE + DTNB directly onto the PVAm underlayer without a silica coating, and printing of AChE + DTNB onto PVAm/silica without printing a silica overlayer.
- AChE Activity on Paper Prior to monitoring AChE activity on paper, the activity of AChE as a function of enzyme concentration was optimized. Different concentrations of AChE (0-200 U/mL) were entrapped in SS+30% glycerol in a 96 well plate (total volume of 80 ⁇ L). A mixture (20 ⁇ L) of DTNB (500 ⁇ M) and ATCh (300 ⁇ M) was then added into each well and incubated for 5 min to allow color development. The absorbance at 412 nm was then measured using a TECAN Safire microwell plate reader.
- the AChE activity on the bioactive paper strip was evaluated by measuring the color intensity produced by the enzymatic reaction using Ellman's method
- the performance can be assessed in two ways a) by direct addition of substrate solution to sensing area, and b) by immersion into the substrate solution
- the performance of our sensor was essentially the same for both these cases
- small amounts of reagent are needed (5 ⁇ l_) relative to dipstick sensors ( ⁇ 2 ml_), reducing cost per assay
- small amounts (5 ⁇ l_) of different concentrations of the substrate ATCh (0 - 500 ⁇ M) was added directly onto the sensing area of the paper strip and incubated for 5 min at room temperature to allow the yellow color to develop
- the color intensity of the sensing areas was quantified by obtaining a digital image (Canon A630, 8 0 MegaPixel operated in automatic mode with no flash and with the macroimaging setting on) and using ImageJTM software to analyze the jpeg images Image
- the PVAm treated strips were then immersed into a solution of 5-thio-2-nitrobenzoate (TNB ⁇ , the colored product of the AChE catalyzed reaction), which was produced enzymatically from ATCh (final cone. 300 ⁇ M), DTNB (final cone. 500 ⁇ M), and AChE (final cone. 50 U/mL) with the sensing area above the liquid level.
- the retardation factor (Rf) was calculated based on the ratio of migration distance of the product (TNB-) relative to the migration distance of solvent (MiIIi-Q water) from this lateral flow based platform.
- Triton X- 100 a mild detergent, was used as a surfactant.
- Triton X-100 a solution of AChE (50 U/mL) in Tris buffer containing 0 1 wt % of Triton X-100 was prepared, and then the enzyme activity in solution was measured using the Ellman assay No significant loss of AChE activity was observed in the presence of this low level of Triton X- 100 Therefore, 0 1 wt % Triton X-100 was included in all bioink formulations (e g , AChE, sol-gel derived silica, PVAm) to get the optimum surface tension for printing (Table 1)
- FIG. 2A shows optical profilometry images of paper that is coated with PVAm only (Figure 2A(a)), and with both PVAm and the silica/AChE+DTNB/silica layers ( Figure 2A(b)). No bioinks were printed on the non-sensing region.
- the profilometry results show that the PVAm layer is approximately 4 ⁇ m thick, while the sol- gel based coating had an average thickness of about 24 ⁇ m. Similar results were obtained for layers printed on glass slides, suggesting that the majority of the sensing layer was present on top of the paper rather than within the paper.
- Figure 2B shows SEM images of the unmodified paper (Figure 2B(a)), PVAm coated paper ( Figure 2B(b)) and paper that was coated with both the PVAm and silica/AChE+DTNB/silica layers ( Figure 2B(c)).
- the unmodified paper surface is very rough (average roughness of ⁇ 972 nm) and heterogeneous, and clearly shows the presence of significant amounts of fillers (i.e., clay particles) at the surface of the paper and no evidence for paper fibers at the surface. This is consistent with the fact that the Mead paper used in this study had a protective coating.
- PVAm cationic polymer
- a relatively homogeneous, crack-free layer which showed no evidence of large scale macropores (diameter > 0.5 ⁇ m), consistent with the inability of glycerol to act as a porogen.
- the profilometry and SEM images show that the sol-gel based ink layer is present on top of the paper, rather than penetrating through the paper. This is advantageous as it should help to retain the colorimet ⁇ c signal within a thin layer rather than having it diffuse throughout the thickness of the paper, making visualization easier
- AChE Activity and Its Storage Stability Prior to developing the dipstick sensor, the activity of AChE was evaluated as a function of enzyme concentration (0-200 U/mL) via the Ellman assay when entrapped in sol-gel derived monolithic silica prepared from SS with 30% glycerol
- the signal measured 5 min after addition of 300 ⁇ M ATCh and 500 ⁇ M DTNB, increased linearly over the concentration range from 0 - 50 U mL 1 after which the signal showed negative deviation and reached a plateau at ⁇ 100 U mt_ ⁇ 1
- a value of 50 U/mL was chosen the best compromise between a low enzyme loading, a sufficiently high signal (> 4-fold increase over background) and good long-term stability
- the high activity of entrapped AChE is in agreement with previous reports showing that the enzyme is active and stable in sol-gel derived silica materials 32
- the former issue is expected based on the ability of the small molecular weight colored product to readily move through the pores of the silica matrix and thus leach out of the sensing area.
- the latter issue appears to be related to a secondary chemical reaction of the TNB- with either the silica or some component in the paper, causing complete loss of color intensity over a period of a few days (see below). This makes storage of used sensors for future reference impossible. Therefore, trapping and preserving the color within a finite region was desirable to obtain the highest output signals and keep the signal stable over long periods of time. It was reasoned that the best method for capturing the anionic colored product was to introduce a cationic polymer, PVAm, onto the surface of the paper.
- This polymer has recently been shown to be useful for enhancing the wet strength of paper, 34 and thus should be compatible with the substrate, and binds strongly to silica, 35 which should promote adhesion of the silica overlayer and not interfere with this coating layer.
- introduction of PVAm directly to a silica sol causes very rapid gelation owing to base catalyzed condensation, and hence this polymer was printed on paper prior to printing of the silica sol to avoid this problem.
- Figure 5a shows the values of retardation factor (Rf), a measure of the relative mobility of TNB-, as a function of PVAm concentration and demonstrates that the Rf values decreased with increasing levels of PVAm up to a level of 0.5 wt% of PVAm.
- Rf retardation factor
- Figure 5b shows the colour intensity due to elution of Ellman's solution using the lateral-flow based paper chromatographic system.
- the areas within the dashed boxes were either treated or not treated (control) with 0.5 wt% PVAm, deposited via ink jet spraying onto Whatman 1 paper, followed by printing of the silica/AChE+DTNB/silica layers over the same area. It was found that PVAm was able to trap and concentrate the TNB- reaction product without diminishing the color intensity, while the unmodified paper (control) failed to trap the yellow color. As a result, the intensity of the yellow color was much higher when PVAm was present (0.25 x 1 cm), which should produce a better detection limit when using the paper to sense AChE substrate or inhibitors.
- Neurotoxins such as paraoxon and aflatoxin B1 are well known inactivators of acetylcholinesterase. 27 36 ' 37 ' 38
- the ability to detect these compound using the ink jet printed AChE-based paper sensor was investigated by using an overspotting method wherein small volumes of reagents were added to the sensing area directly. In this case, as little as 10 ⁇ L of solutions containing various concentration of paraoxon or AfB1 could be tested by applying them onto the sensing area of the strip, incubating for 10 min at room temperature, adding 10 ⁇ L of a solution containing 300 ⁇ M ATCh and finally measuring the color intensity after 5 min using a digital camera and image processing software.
- Figure 6a shows the dose-dependent inhibition effects of paraoxon
- Figure 7a and Figure 7b show the dose-dependent inhibition responses and a semi-logarithmic plot of color intensity, respectively, for AfB1 , and show that the IC 50 in this case is ca 100 nM, with a LOD of -30 nM.
- a comparison of the responses obtained at 100 nM of either paraoxon or AfB1 show that AfB1 is a more potent inhibitor (-45% inhibition vs.
- Reagents All chemical from commercial sources were of analytical grade. Sodium silicate solution ( ⁇ 14% NaOH, -27% SiO 2 ), dowex 50WX8-100 ion-exchange resin, acetylcholinesterase (AChE, from electrophorus electricus, EC 3.1.1.7), Triton X-100, the pesticides including both organophosphate (OP) (e.g., paraoxon and malathion), and carbamate (CM) (e.g., carbaryl and bendiocarb) were obtained from Sigma-Aldrich (Oakville, ON, Canada). The indophenyl acetate (IPA) was purchased from Pealtz & Bauer, lnc (USA).
- Polyvinylamine (PVAm; 1.5 MDa) was obtained from BASF (Mississauga, Canada), as a gift.
- Anhydrous glycerol was purchased from Fluka BioChemika Ultra (UK).
- Distilled deionized water was obtained from a MiIIi-Q Synthesis A10 water purification system.
- Sol-gel Material Preparation A biocompatible sol-gel precursor, sodium silicate (SS) was used to prepare sols for both enzyme and IPA entrapment and printing onto paper.
- SS sols were prepared by mixing 10 ml_ of ddH 2 O with 2.59 g of sodium silicate solution (pH -13) followed by addition of 5 g of Dowex cation exchange resin to replace Na + with H + . The mixture was stirred for 30 seconds to reach a final pH of ⁇ 4, and then vacuum filtered through a B ⁇ chner funnel. The filtrate was then further filtered through a 0.45 ⁇ m membrane syringe filter. These sols were used to formulate silica- containing inks as described below.
- Example 2 Ink jet printing, all inks were modified with respect to viscosity and surface tension similarly as described in Example 1. The sensor was then allowed to air dry at room temperature. Two control experiments: (1) a buffer that did not contain AChE was entrapped between the silica layers in the sensing region, and (2) a buffer that did not contain IPA was entrapped between the silica layers in the substrate region. Other controls involved entrapment of AChE directly onto the PVAm underlayer without a silica coating, and entrapment of AChE onto PVAm/silica without printing a silica overlayer.
- Example 1 Optimization of Reagentless Paper-Based Lateral Flow Assay Platform: The lateral flow assay format was optimized with regard to the PVAm levels, the pH level of Tris buffer (10 mM) that was used to dissolve the enzyme substrate, concentration of substrate, and the concentration of the enzyme. [00157] In Example 1 , a lateral flow-based paper chromatographic system was developed to investigate the effect of the PVAm underlayer on the solid phase sensor performance where the PVAm treated strips were immersed into a solution of 5-thio-2-nitrobenzoate (TNB-, the colored product of the AChE catalyzed reaction), which was produced enzymatically from ATCh (final cone. 300 ⁇ M), DTNB (final cone. 500 ⁇ M), and AChE (final cone.
- TAB- 5-thio-2-nitrobenzoate
- the retardation factor (Rf) was calculated based on the ratio of migration distance of the product (TNB-) relative to the migration distance of solvent (MiIIi-Q water) from this lateral flow based platform. Therefore, the PVAm level was not optimized further to entrap as well as preserve the anionic dye (indophenoxide ); hence, the previously optimized PVAm level was taken as an optimum value in this example.
- IPA Tris buffer having different levels of pH (4-9.5).
- 80 ⁇ l_ of IPA solution and 20 ⁇ L of AChE final cone 500 U/mL were then mixed into a 96-well plate and incubated for 5 min to allow color development.
- the absorbance at 640 nm was then measured using a TECAN Safire microwell plate reader.
- IPA concentrations Prior to monitoring AChE activity on paper, the activity of AChE as a function of enzyme concentration and chromogenic AChE substrate, IPA concentrations were optimized. Different concentrations of AChE (0-1500 U/mL) were entrapped in SS+30% glycerol in a 96 well plate (total volume of 80 ⁇ L). 20 ⁇ L of IPA (0 ⁇ 5mM) was then added into each well and incubated for 5 min to allow color development. The absorbance at 640 nm was then measured using a TECAN plate reader. [00160] The AChE activity on the bioactive paper strip was evaluated by measuring the color intensity produced by the enzymatic hydrolysis of IPA.
- the performance of the sensor under optimized conditions can be assessed in two ways: (1) directly (normal lateral flow-based chromatography) without incubating the contaminated sample, and (2) inverted lateral flow-based chromatography with incubation of the sample. For the latter case, after incubation 5 min at room temperature, the sensor was inverted again and immersed into dH 2 O for bringing up IPA by lateral flow action into sensing area of the strip above the liquid level.
- the color intensity of the sensing areas was quantified by obtaining a digital image (Canon A630, 8.0 Megapixel operated in automatic mode with no flash and with the macroimaging setting on) and using ImageJTM software to analyze the jpeg images.
- ImageJTM software uses a 256 bit color scale and for our image processing the images were inverted so that white corresponded to a color intensity of 256 and black corresponded to zero. Based on this, increases in the amount of blue color cause an increase in color intensity of our reagentless sensor strips.
- a background subtraction color intensity of the paper surface closest to the sensing area was done for each data point.
- FIG. 8a shows the IPA reaction, which results in a color change from yellow to blue
- Figure 8b shows a schematic of the ink jet layers used in the assay, with AChE or IPA entrapped between two silica layers in distinct regions of the paper-based device.
- Flow of liquid moves the IPA up to the AChE region and produces a product that can be captured by a PVAm underlayer
- the assay can be done directly or in an "inverted" format. In the first case an inhibitor is present in the test solution and is flowed through the IPA region to the AChE region.
- test solution is flowed from the opposite end of the device into the AChE region where it is incubated After a set amount of time the other end is placed into the test solution and the IPA is moved into the AChE region. This allows compounds that are slow inhibitors of the enzyme to be detected.
- Example 1 Trapping and preserving the color (that is produced during enzymatic hydrolysis of substrate) within a finite region of the sensor is advantageous to obtain the highest output signals and keep the signal stable over long periods of time.
- Example 1 a lateral flow-based paper chromatographic system was developed to investigate the effect of the PVAm underlayer on the solid phase sensor performance where the PVAm (0 ⁇ 1 wt%) treated strips were immersed into a solution of 5-thio-2-nitrobenzoate (TNB-, the colored product of the AChE catalyzed reaction), which was produced enzymatically from ATCh (final cone. 300 ⁇ M), DTNB (final cone. 500 ⁇ M), and AChE (final cone.
- the retardation factor (Rf) was calculated based on the ratio of migration distance of the product (TNB-) relative to the migration distance of solvent (MiIIi-Q water) from this lateral flow based platform.
- the capability of PVAm to preserve the TNB- product for an extended period of time was also investigated. Therefore, the PVAm level was not optimized further to entrap as well as preserve the anionic dye (indophenoxide-) in this Example. Here, it was determined whether or not the previously optimized PVAm level (0.5wt%) was enough to trap as well as concentrate the blue color product (indophenoxide-).
- Figure 9(a) shows the color intensity (Cl) due to elution of IPA (3 mM, final cone.) in the lateral flow based platform.
- the areas within the dashed boxes were either treated or not treated (control) with 0.5 wt% PVAm, deposited via ink jet spraying/overspotting onto Whatman #1 paper, followed by printing/overspotting of the silica/AChE(500 U/mL)/silica layers over the same area.
- Figure 9(b) represents a reagentless bioactive paper platform, in which AChE and IPA were entrapped into two different regions and then the sensor was dipped into dH 2 O to bring up the IPA reagent by capillary action into sensing region for the generation of blue color due to enzymatic hydrolysis of substrate. This result indicates a proof of concept study for the development of reagentless bioactive lateral-flow paper based sensing platform.
- IPA lndophenyl acetate
- AChE hydrolyzes the substrate IPA at pH 8.0 to produce a highly blue colored product.
- Preliminary studies on the effects of pH (4 ⁇ 9.5) of the Tris buffer (1OmM) on IPA stability in solution showed that at levels slightly lower than pH 8.0 gives considerably lower absorbance readings for the enzyme-substrate reaction product, while at slightly higher levels than pH 8.0, auto hydrolysis of IPA occurred even in the absence of AChE.
- the maximum absorbance of the reaction product was saturated at pH 8.0. Therefore, pH 8.0 was considered as an optimum value for the Tris buffer (10 mM), which was used to dissolve IPA in this study.
- the observed stability of IPA at buffer pH 8.0 is in agreement with previous reports.
- IPA concentrations (0-5mM) were optimized via the IPA-based colorimetric assay when entrapped in sol-gel derived monolithic silica prepared from SS with 30% glycerol in a 96-well plate.
- concentration of AChE solution (0-1500 U/mL)
- the signal measured 5 min after addition of 3 mM IPA, increased linearly over the concentration range from 0 - 500 U.mL -1 after which the signal showed negative deviation and reached a plateau at -1500 U.mL -1 .
- the sensor was incubated for 5 min and the inhibition of AChE was tested following the inverted lateral flow procedure as described in above.
- a decrease in color formation indicates the presence of an inhibitory substance. It was found that the detection limit of these pesticides was considerably lower for the first case in comparison with the second one. Therefore, inverted lateral flow system with incubation was used for all subsequent experiments to assess pesticide detection in this study.
- Figure 11 A-(a) and A-(c) show the dose-dependent inhibition responses of two carbamate pesticides such as bendiocarb and carbaryl, respectively, while Figure 11 A-(b) and A(d) show the semi log plots of data in panels A-(a) and A-(c), respectively.
- the data suggest that increasing concentrations of both bendiocarb and carbaryl progressively inhibit the activity of AChE.
- the apparent saturated inhibition concentrations for bendiocarb and carbaryl were found to be around 1 ⁇ M and 5 ⁇ M, respectively.
- the calculated IC 5 0 values for bendiocarb and carbaryl to inhibit the activity of AChE were 20 nM and 50 nM, respectively.
- Example 3 Development of a bioactive lab-on-paper sensor for the detection of E. coli based on ⁇ -glucuronidase activity
- Triton X-100, Tween-20, and B- lysing agent were purchased from Sigma-Aldrich.
- Polyvinylamine (PVAm; 1.5 MDa) was obtained from BASF (Mississauga, Canada), as a gift.
- B-PER Direct bacterial protein extraction reagent was obtained from Thermo Scientific.
- Fe 2 O 3 beads and E. coli polyclonal antibody were purchased from BioClone Inc. and Abeam, respectively.
- Distilled deionized water (ddH 2 O) was obtained from a MiIIi-Q Synthesis A10 water purification system. All other reagents were of analytical grade.
- PNPG, IBDG were made up using phosphate buffer supplemented with 0.5 wt. % BSA (75 mM, pH 8). These solutions can be used up to three months under appropriate storage conditions (-20 °C). Both PVAm (0.5 wt.%) and PAA (0.025 wt.%) solutions were prepared by dissolving in distilled deionized H 2 O. Methyltrimethoxysilane (MTMS) was hydrolyzed by mixing 98% MTMS with 0.1 N HCI in a 5:1 volume ratio. This mixture was sonicated for 20 minutes on ice to promote ether hydrolysis. All other solutions were prepared using phosphate buffer (75 mM, pH 8) if not otherwise stated. CAUTION: All oxidizing agents are toxic. These materials should be handled with gloves and used in fumehood.
- MTMS Methyltrimethoxysilane
- Organisms and Plate Counting Two non-pathogenic bacteria (E. coli BL21 and B. Subtilis) strains were used in this study. Standard LB media (total vol. 25 mL with ampicillin 100 ⁇ g/mL and chloramphenicol 33 ⁇ g/mL) was used for both E. coli BL21 and B. Subtilis culture. Tryptic soy broth (TSB, total vol. 5 mL) is used for E. coli 0157:H7 culture. The cultures were grown overnight at 37oC with shaking at 125 rpm.
- TTB Tryptic soy broth
- Sol-gel Material Preparation A biocompatible sol-gel precursor, sodium silicate (SS) was used to prepare sols for both substrates and oxidizing agents entrapment onto paper.
- SS sols were prepared by mixing 10 mL of ddH 2 O with 2.6 g of sodium silicate solution (pH -13) followed by addition of 5 g of Dowex cation exchange resin to replace Na + with H + . The mixture was stirred for 30 seconds to reach a final pH of ⁇ 4, and then vacuum filtered through a B ⁇ chner funnel. The filtrate was then further filtered through a 0.45 ⁇ m membrane syringe filter. These sols were used to prepare silica-containing inks as described below.
- the sensing region was prepared by depositing PVAm (0.5wt%) /silica/X-GLUC/silica layers in the order described, while the oxidizing agent region was prepared by depositing silica/FeCI 3 /silica layers using either ink jet printing or deposition via micropipette (for proof-of- concept studies and assay optimization), as shown in Figure 13b.
- ink jet printing all inks were modified with respect to viscosity and surface tension, and printing was done as reported in Examples 1 and 2. After printing, the sensor was allowed to dry for at least 1 h in air at room temperature. For control experiments, a buffer that did not contain X-GLUC was entrapped between the silica layers in the sensing region.
- the test strips assay format was optimized with regard to the type and concentration of capture agents, pH, type and concentration of substrate, the kind and concentration of oxidizing agents, and the time for color development.
- two potential capture agents including PAA (anionic polymer) and PVAm (cationic polymer) were used.
- Whatman #1 paper strips (1 x 10 cm) were treated with both PAA (0 or 0.025 wt.%), and PVAm (0 or 0.5 wt%) using either ink jet depositio or over spotting and were allowed to air dry for 15 min.
- the capture agents treated strips were then immersed into a solution of blue CIBr-indigo dye (which is produced via reaction of GUS, 5 U/mL and X-Gluc, 4 mM) and allowing the dye to move-up via lateral flow for 10 min. Following the assay the resulting color intensity remaining on the paper strip was monitored once a week for up to 8 weeks.
- CIBr-indigo dye which is produced via reaction of GUS, 5 U/mL and X-Gluc, 4 mM
- PVAm/Silica/X-Gluc/Silica layers were printed or over spotted at a width of 0.5 cm across the Whatman #1 filter paper 5 cm from the bottom of the paper (X-Gluc concentration of 3 mM), while silica/FeCls/silica layers were printed or over spotted in a 0.5 cm wide area across the paper strip 4 cm from the bottom of the paper (FeCI 3 concentration of 2 mM) (same as Figure 13b).
- the sensor was then immersed into GUS solution (final concentration of 1 U/mL) having different pH values (6 - 8.5) and was removed as soon as the solution has reached to the sensing region via lateral flow.
- GUS hydrolyzes the chromogenic substrate X-Gluc to produce a transition from a colorless substrate to deep blue colored product. The color intensity was then monitored with different incubation time (5, 30, and 60 min).
- the chromogenic substrates e.g., X-Gluc, PNPG, and IBDG
- X-Gluc X-Gluc
- PNPG PNPG
- IBDG chromogenic substrates
- E. coli Test Strips Different concentrations of bacteria cells (e.g., E. coli BL21 or B. Subtilis) suspensions ranging from 0- 1x10 7 CFU/mL were made for this study. Three different set of experiments were conducted for each of the bacterial strains. 2 ml_ of bacterial cell suspension was mixed with 200 ⁇ l_ of B-PER DIRECT bacteria lysing reagent by pipetting up and down and incubated for 15 min at room temperature. The bacteria sample or lysate was then assayed using the paper sensor via lateral flow technique as outlined above. When the lysate reached to the sensing zone of the sensor, lateral flow was stopped and the sensor was allowed to dry in air.
- bacteria cells e.g., E. coli BL21 or B. Subtilis
- a colorless-to-deep blue color change could be observed within a few min due to enzymatic hydrolysis of substrate, X-Gluc.
- the level of E. coli in samples was detected by measuring the color intensity with incubation time at 5, 30, or 60 min.
- the color intensity was determined by analyzing a digital image with the ImageJTM software as described above.
- E. coli Capture Conjugation of antibody (goat pAb to E. coli, Abeam) to MBs (hydrazide modified, 1 ⁇ m, 1.7x10 8 beads/mg, Bioclone Inc.) was conducted according to the instructions provided by the manufacturer. Briefly, the conjugation protocol could be performed in two steps: 1 ) Oxidation of Antibody. A measured amount of pAb was added to 1 ml_ of sodium acetate buffer (0.1 M, pH 5.6). A mild oxidizing agent, sodium meta-periodate (NaIO 4 , final concentration of 10 mM) was added into pAb solution and incubated the sample in the dark room at room temperature for at least 30 min with gentle rotation.
- the unreacted NaIO 4 was then removed using a Nanosep Centrifugal Device (consists of a sample reservoir with encapsulated membrane with pore size, 3OK and a filtrate receiver) followed by centrifugation at 14 00Og for 5 min, and the oxidized pAb was then dissolved with 500 ⁇ l_ sodium acetate buffer (0.1 M, pH 5.6). 2) Coupling of Antibody to Magbeads. A solution of completely suspended MBs (100 uL, 4-8 x 10 8 beads/mL) was transferred to a microcentrifuge tube and placed into a magnetic separator for 2-3 min.
- the supernatant was discarded and the bead pellet was redispersed in 500 ⁇ l_ of sodium acetate buffer (0.1 M, pH 5.6) after washing with the same buffer 3 times.
- This MBs solution was then mixed with 500 ⁇ l_ of oxidized antibody (from step 1). The mixture was then allowed to keep shaking for at least 6 h at room temperature.
- the loading of pAb onto MBs was determined by measuring fluorescence intensities of the supernatant (intrinsic tryptopphan fluorescence measurements at Ex 284 nm and Em 342 nm using TECAN Infinite M1000) every 2h followed by magnetic separation.
- FI b Fluorescence intensity of Ab solution before its binding to beads
- antibody conjugated MBs were washed with sodium acetate buffer (0.1 M, pH 5.6) 3 times and then with PBS buffer (pH 7.4) 5 times followed by a magnetic separation.
- the antibody conjugated MBs were resuspended with 1 ml_ PBS (10 mM, pH 7.4), which could be stored at 4 oC for more than 1 month.
- MB-Ab (200 ⁇ l_, 1.4- 2.4 x 10 8 beads) was dispersed in 10 ml_ of E. coli containing PBS solution (10 2 -10 6 CFU/mL) The mixture was incubated at room temperature under shaking (220 rpm) for 1 h After incubation, the MB-Ab-E coli complex was collected using a magnetic separator and the supernatant was transferred into a new tube for quantification of captured E coli by the plate counting method A capture efficiency of MB-Ab system was estimated by counting colonies after addition of MB-Ab in sample tubes containing various numbers of E coli The amount of MB-Ab was also optimized by varying the volume of MB-Ab (20-500 ⁇ l_) with constant cell number (10 4 CFU/mL) MB-Ab-E coli complex was washed 5 times in 10 mM PBS (pH 7 4) and then resuspended in 1 8 mL
- E. coli BL21 and B. Subtilis were grown individually. 2 ml_ of E. coli suspension (10 6 CFU/mL), 2 ml_ of B. Subtilis (10 6 CFU/mL), and a mixture of both bacterial suspensions (1 mL each, 10 6 CFU/mL each) were lysed using B-PER DIRECT bacteria lysing agent separately. The sensor was used to test the GUS activities followed by lysis the cells as outlined in the previous section and the color intensities produced (from individual and mixture cells lysate) were compared.
- a GUS chromogenic substrate suitable for visual detection was used. Initially the substrate was selected from three different chromogenic substrates, such as indoxyle- ⁇ -D-glucuronide (IBDG), para-nitro- ⁇ -D- glucuronide (PNPG) and 5-bromo-4-chloro-3-indolyl ⁇ -D-glucuronide (X-Gluc) based on their capability for visual color formation via GUS catalyzed hydrolysis of these substrates in solution for 30 min.
- IBDG indoxyle- ⁇ -D-glucuronide
- PNPG para-nitro- ⁇ -D- glucuronide
- X-Gluc 5-bromo-4-chloro-3-indolyl ⁇ -D-glucuronide
- the sensor was then immersed into GUS solution (final concentration of 1 U/mL) having different pH values (6- 8.5) and was removed as soon as the solution had reached to the sensing region via lateral flow.
- the produced blue color intensity was then measured with different drying time (5, 30, and 60 min).
- Figure 14b shows that the color intensity increases with pH over the range pH 6.0 to 8.0 and above pH 8.5, color intensity is decreased owing to possibility of degradation of enzyme at this higher pH level.
- the data also demonstrated that color intensity increases with time and 5 min was the minimum length of time to allow measurement of color.
- the maximum signal was obtained at pH 8 (similar to that of solution assay) with 1 h drying time therefore, pH 8 and 1 h drying time was used for all further paper-based assays.
- a 96-well format was used to select the appropriate oxidizing agent for oxidation of indoxyl to blue color product, CIBr-indigo dye rapidly.
- a comparison of the blue color development (visual detection) in silica monoliths was performed for 30 min using five different oxidizing agents (e.g., FeCI 3 DDQ, MCPBA, IBX, and H 2 O 2 ).
- FeCI 3 was selected as the most suitable one based on the strongest visual color intensity produced.
- the poorest performance for blue color development was observed in the presence of DDQ.
- the effect of adding varying levels of FeCI 3 over the bioactive paper strip are shown in Figure 14c (a separate paper sensor is used for each FeCI 3 concentration).
- an appropriate bacteria lysis reagent was selected from 4 different lysis reagents such as TweenTM 20, Triton X100, CellLyticTM B cell lysis reagent, and B-PER direct protein extraction reagent
- E coli BL21 cell suspension (1 x 10 6 cfu/mL in 75 mM phosphate buffer, pH 8) was mixed separately with all of these lysis reagents for 15 min at room temperature X-Gluc (final concentration, 4mM) and FeCI 3 (1 mM) were then added and incubated 60 min for color development
- X-Gluc final concentration, 4mM
- FeCI 3 (1 mM
- patterned paper can concentrate the color to a narrow zone/band, which in turn increases the sensor sensitivity
- two different patterns e g , open or closed microfluidic channel type
- the patterns were printed on Whatman 1 paper using wax ink and then placed in an oven at 100oC for 5 min to melt the wax and impregnate the fibers
- the paper was then treated with 0 5 wt% PVAm and entrapped X- GLUC and FeCb in the indicated regions using sol-gel derived silica matrix
- Both patterns were dipped in GUS solution (1 U/mL) to test their utility
- Results showed that the microfludic closed channel based patterned paper provided a total intensity that was 1 7-fold higher than the others Therefore, this patterned paper sensor was used for the E coli assay, which is shown in Figure 15c, where color intensity increases with E coli concentration (separate paper sensor was used for each concentration)
- E. coli is a common indicator of fecal contamination and pollution (e.g., coliforms and fecal coliform etc).
- the sensor is able to detect any GUS producing cells but does not provide identification of the specific cell strain that is detected.
- E. Coli Assay in Beverage Samples Milk (1%) and orange juice were artificially contaminated with E. coli (ca. 4 x 10 5 CFU/mL) to assess the effect of such sample matrices on assay performance and detection limits. Prior to the assay, the pH of the samples was adjusted to the range of 7-8, which retained the activity of the GUS enzyme in the samples. As shown in Figure 17, the signal variation (for both milk and orange juice samples) is almost similar to that typically obtained (see Figure 15c), which indicates that the food samples matrices had a negligible effect on the limit of detection.
- a test kit that combines magnetic preconcentration and bioactive paper strips should allow selective detection of pathogenic bacteria in food and water with no need for culturing or instrumentation, making it suitable for remote and resource limited locations that may lack electricity.
- test strip is printed with a chromogenic substrate region and a capture/preconcentration region to allow ultrasensitive detection of bacteria based on the ability of specific bacterial enzymes to convert the colorless substrate to a highly colored product (like that described in Example 3).
- An advantage of the above approach is the ability to provide a cost-effective, portable, easy-to-use test strip that can either be observed directly by eye or recorded by a digital camera.
- the combination of magnetic preconcentration and amplified detection of bacteria should allow detection of as little as 10 - 20 CFU/mL of pathogenic bacteria with no need for culturing, and can be produced as a simple kit, permitting the test to be run even by untrained personnel.
- this example will provide a new test strip platform technology that directly addresses the need for low-cost diagnostics that can protect against infectious disease.
- the assay kit is designed to perform three intricately linked chemical and biochemical processes: 1) specific preconcentration of one or multiple pathogenic organisms using magnetic preconcentration, 2) lysing of cells to release intracellular ⁇ -glucoronidase ( ⁇ -gus) or ⁇ -galactosidase ( ⁇ -gal) enzymes, and 3) a paper-based multi-pathogen detection assay utilizing a chromogenic substrate for ⁇ -gus or ⁇ -gal, along with a strong oxidizing agent to accelerate product formation and a capture zone to concentrate the product into a narrow band for highly sensitive detection.
- the assay utilizes antibody-derivatized magnetic beads to selectively concentrate one or more pathogenic bacteria from an initial volume of ⁇ 50 mL to a final volume of -0.5 ml_, which results in a 50-100 fold concentration enhancement depending on capture efficiency of the cells by the magnetic particles.
- a lysing buffer which releases either ⁇ -gus (endogenous to E. coli BL21 and K12, as well as salmonella) or ⁇ -gal (endogenous to E.
- each lane contains a strong oxidizing agent, which accelerates the rate of product formation, and a capture zone (cationic polymer coated region) that concentrates the anionic product within a narrow zone. All reagent zones are printed by an ink-jet method using a special sol-gel derived ink. After a suitable reaction time (ca. 5 min), the developed color is used to quantify the amount of a selected pathogen initially present in the test sample.
- Example 3 The results in Example 3 have demonstrated the ability to 1) form multi- channel fluidic devices on paper using wax printing; 2) print all reagent zones onto the paper strips using an ink-jet method and a sol-gel based ink, 3) detect ⁇ -gus enzymes liberated from lysed E. coli K12 cells using the paper strip.
- E. coli has been successfully detected with a detection limit of 10 3 CFU/mL.
- Preliminary data has also been obtained on the use of magnetic preconcentration, with preconcentration levels being ⁇ 50- fold for E. coli K12, and detection limits being on the order of 20 CFU/mL (starting with a sample volume of 50 mL).
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| US18238909P | 2009-05-29 | 2009-05-29 | |
| PCT/CA2010/000802 WO2010135834A1 (en) | 2009-05-29 | 2010-05-31 | Biosensors utilizing ink jet-printed biomolecule compatible sol gel inks and uses thereof |
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| EP2435579A1 true EP2435579A1 (en) | 2012-04-04 |
| EP2435579A4 EP2435579A4 (en) | 2013-04-17 |
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| EP10779977.7A Withdrawn EP2435579A4 (en) | 2009-05-29 | 2010-05-31 | BIOSENSORS USING SOL-GEL INK COMPATIBLE WITH INKJET PRINTED BIOMOLECULES AND USES THEREOF |
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| US (2) | US9157109B2 (en) |
| EP (1) | EP2435579A4 (en) |
| CA (1) | CA2763834A1 (en) |
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| KR101274765B1 (en) | 2011-04-27 | 2013-06-14 | 피씨엘 (주) | Sol-gel Kit for Preparing Biochip and Method for Preparing Biochip Using the Same |
| CN102893149B (en) * | 2011-04-27 | 2015-11-25 | Pcl公司 | Sol-gel kit for preparing biochip and method for preparing chip using same |
| JP5919117B2 (en) * | 2012-07-19 | 2016-05-18 | 日本碍子株式会社 | Nucleic acid chromatography test tool and method for producing the same |
| US11179513B2 (en) | 2012-10-30 | 2021-11-23 | Preva, Llc | Irrigation assembly |
| US11980352B2 (en) * | 2012-10-30 | 2024-05-14 | Preva, Llc | Nasal irrigation diagnostic assembly |
| US20180110499A1 (en) | 2016-10-21 | 2018-04-26 | Keith Rubin | Nasal irrigation diagnostic device |
| ES2523397B1 (en) * | 2013-05-24 | 2015-09-10 | Fundació Cetemmsa | INK COMPOSITION FOR INJECTION PRINTING |
| JP6415827B2 (en) * | 2013-09-08 | 2018-10-31 | 株式会社テクノメデイカ | Detection of transferrin family proteins using a paper machine |
| US11311706B2 (en) | 2014-02-13 | 2022-04-26 | Preva, Llc | Nasal irrigation assembly and system |
| WO2015134742A1 (en) * | 2014-03-06 | 2015-09-11 | The Regents Of The University Of California | A test strip for melamine detection |
| US20160024478A1 (en) * | 2014-07-24 | 2016-01-28 | University Of Guelph | Active Phage-Based Inks, Methods of Printing on Materials and Phage-Based Bioactive |
| WO2016196370A1 (en) * | 2015-05-29 | 2016-12-08 | PDx BioTech | Device for detection and/or monitoring of food spoilage |
| US10386365B2 (en) | 2015-12-07 | 2019-08-20 | Nanohmics, Inc. | Methods for detecting and quantifying analytes using ionic species diffusion |
| US10386351B2 (en) | 2015-12-07 | 2019-08-20 | Nanohmics, Inc. | Methods for detecting and quantifying analytes using gas species diffusion |
| US11988662B2 (en) | 2015-12-07 | 2024-05-21 | Nanohmics, Inc. | Methods for detecting and quantifying gas species analytes using differential gas species diffusion |
| US10247728B1 (en) * | 2016-03-17 | 2019-04-02 | Charm Sciences, Inc. | Method and assay for detection of residues |
| US12103173B2 (en) | 2016-04-20 | 2024-10-01 | The Brigham And Women's Hospital, Inc. | Systems and methods for in vivo multi-material bioprinting |
| CA3035874C (en) | 2016-10-05 | 2025-09-09 | F. Hoffmann-La Roche Ag | Detection reagents and electrode arrangements for multi-analyte diagnostic test elements, as well as methods of using the same |
| US11155812B2 (en) * | 2016-12-01 | 2021-10-26 | The Board Of Regents Of The University Of Texas System | One-step surface modification to graft DNA codes on paper and its bio-applications |
| EP3642625A4 (en) * | 2017-06-20 | 2021-06-09 | Salus Discovery, LLC | SIDE DRAINAGE DEVICES AND METHODS |
| US11331019B2 (en) | 2017-08-07 | 2022-05-17 | The Research Foundation For The State University Of New York | Nanoparticle sensor having a nanofibrous membrane scaffold |
| US11131615B2 (en) | 2018-06-07 | 2021-09-28 | Nanohmics, Inc. | Sensor and methods for detecting and quantifying ions and molecules |
| CN109682966B (en) * | 2019-02-01 | 2022-02-18 | 湘潭大学 | Visual enzyme-linked immunosorbent quantitative detection method based on flat-plate printing |
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| US4810636A (en) * | 1986-12-09 | 1989-03-07 | Miles Inc. | Chromogenic acridinone enzyme substrates |
| US6016689A (en) * | 1996-11-18 | 2000-01-25 | The Research Foundation Of Suny At Buffalo | Aerosol-generated sol-gel derived thin films and applications thereof |
| US20090011945A1 (en) * | 1999-07-28 | 2009-01-08 | Bright Frank V | Method For Making Microsensor Arrays For Detecting Analytes |
| US20030231984A1 (en) * | 2002-05-07 | 2003-12-18 | Bright Frank V. | Method to rapidly prepare and screen formulations and compositions containing same |
| GB0227424D0 (en) * | 2002-11-25 | 2002-12-31 | Univ Warwick | Coatings |
| FI20065478L (en) * | 2006-07-05 | 2008-01-25 | Valtion Teknillinen | Biosensor |
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| CA2763834A1 (en) | 2010-12-02 |
| US20160054310A1 (en) | 2016-02-25 |
| US20120135437A1 (en) | 2012-05-31 |
| EP2435579A4 (en) | 2013-04-17 |
| WO2010135834A1 (en) | 2010-12-02 |
| US9157109B2 (en) | 2015-10-13 |
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